CN107727254A - A wireless real-time monitoring device for reactor operating temperature - Google Patents
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01K—MEASURING TEMPERATURE; MEASURING QUANTITY OF HEAT; THERMALLY-SENSITIVE ELEMENTS NOT OTHERWISE PROVIDED FOR
- G01K1/00—Details of thermometers not specially adapted for particular types of thermometer
- G01K1/02—Means for indicating or recording specially adapted for thermometers
- G01K1/024—Means for indicating or recording specially adapted for thermometers for remote indication
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01K—MEASURING TEMPERATURE; MEASURING QUANTITY OF HEAT; THERMALLY-SENSITIVE ELEMENTS NOT OTHERWISE PROVIDED FOR
- G01K1/00—Details of thermometers not specially adapted for particular types of thermometer
- G01K1/02—Means for indicating or recording specially adapted for thermometers
- G01K1/026—Means for indicating or recording specially adapted for thermometers arrangements for monitoring a plurality of temperatures, e.g. by multiplexing
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01K—MEASURING TEMPERATURE; MEASURING QUANTITY OF HEAT; THERMALLY-SENSITIVE ELEMENTS NOT OTHERWISE PROVIDED FOR
- G01K13/00—Thermometers specially adapted for specific purposes
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02H—EMERGENCY PROTECTIVE CIRCUIT ARRANGEMENTS
- H02H7/00—Emergency protective circuit arrangements specially adapted for specific types of electric machines or apparatus or for sectionalised protection of cable or line systems, and effecting automatic switching in the event of an undesired change from normal working conditions
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
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- Y04S—SYSTEMS INTEGRATING TECHNOLOGIES RELATED TO POWER NETWORK OPERATION, COMMUNICATION OR INFORMATION TECHNOLOGIES FOR IMPROVING THE ELECTRICAL POWER GENERATION, TRANSMISSION, DISTRIBUTION, MANAGEMENT OR USAGE, i.e. SMART GRIDS
- Y04S10/00—Systems supporting electrical power generation, transmission or distribution
- Y04S10/20—Systems supporting electrical power generation, transmission or distribution using protection elements, arrangements or systems
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y04—INFORMATION OR COMMUNICATION TECHNOLOGIES HAVING AN IMPACT ON OTHER TECHNOLOGY AREAS
- Y04S—SYSTEMS INTEGRATING TECHNOLOGIES RELATED TO POWER NETWORK OPERATION, COMMUNICATION OR INFORMATION TECHNOLOGIES FOR IMPROVING THE ELECTRICAL POWER GENERATION, TRANSMISSION, DISTRIBUTION, MANAGEMENT OR USAGE, i.e. SMART GRIDS
- Y04S10/00—Systems supporting electrical power generation, transmission or distribution
- Y04S10/30—State monitoring, e.g. fault, temperature monitoring, insulator monitoring, corona discharge
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y04—INFORMATION OR COMMUNICATION TECHNOLOGIES HAVING AN IMPACT ON OTHER TECHNOLOGY AREAS
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- Y04S40/00—Systems for electrical power generation, transmission, distribution or end-user application management characterised by the use of communication or information technologies, or communication or information technology specific aspects supporting them
- Y04S40/12—Systems for electrical power generation, transmission, distribution or end-user application management characterised by the use of communication or information technologies, or communication or information technology specific aspects supporting them characterised by data transport means between the monitoring, controlling or managing units and monitored, controlled or operated electrical equipment
- Y04S40/126—Systems for electrical power generation, transmission, distribution or end-user application management characterised by the use of communication or information technologies, or communication or information technology specific aspects supporting them characterised by data transport means between the monitoring, controlling or managing units and monitored, controlled or operated electrical equipment using wireless data transmission
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Abstract
本发明涉及电抗器运行温度监测的技术领域,更具体地,涉及一种电抗器运行温度无线实时监测装置。一种电抗器运行温度无线实时监测装置,所述的无线实时监测装置检测多层向心圆形结构的电抗器的实时温度,无线实时监测装置包括高压电场取电温度传感器、无线接收集中器、无线测温监控装置、上位机,所述的高压电场取电温度传感器安装在电抗器的任意层间间隙并通过无线通讯与无线接收集中器连接,所述的无线接收集中器与无线测温监控装置电连接,所述的无线测温监控装置与上位机无线连接或者电连接,所述的无线测温监控装置包括显示装置,所述的显示装置能够实时显示高压电场取电温度传感器反馈的电抗器的温度。
The invention relates to the technical field of reactor operating temperature monitoring, and more particularly, to a wireless real-time monitoring device for reactor operating temperature. A wireless real-time monitoring device for the operating temperature of a reactor. The wireless real-time monitoring device detects the real-time temperature of a reactor with a multi-layer centripetal circular structure. The wireless real-time monitoring device includes a high-voltage electric field power-feeding temperature sensor, a wireless receiving concentrator, The wireless temperature measurement and monitoring device, the host computer, the high-voltage electric field power-feeding temperature sensor is installed in any interlayer gap of the reactor and connected with the wireless receiving concentrator through wireless communication, and the wireless receiving concentrator is connected with the wireless temperature measurement and monitoring The device is electrically connected, the wireless temperature measurement monitoring device is wirelessly connected or electrically connected to the host computer, the wireless temperature measurement monitoring device includes a display device, and the display device can display the reactance fed back by the high-voltage electric field temperature sensor in real time device temperature.
Description
技术领域technical field
本发明涉及电抗器运行温度监测的技术领域,更具体地,涉及一种电抗器运行温度无线实时监测装置。The invention relates to the technical field of reactor operating temperature monitoring, and more particularly, to a wireless real-time monitoring device for reactor operating temperature.
背景技术Background technique
目前变电站并联电容器组配套安装了串联电抗器,用来限制短路电流,因为负荷电流大,运行温度相对较高,导致容易发生绝缘老化,匝间短路等故障,进一步使温度上升,导致电抗器永久损坏,甚至存在发生火灾的危险;At present, the parallel capacitor bank in the substation is equipped with series reactors to limit the short-circuit current. Because the load current is large and the operating temperature is relatively high, it is easy to cause insulation aging, inter-turn short circuit and other faults, which will further increase the temperature and cause permanent damage to the reactor. damage, or even the risk of fire;
目前的继电保护项目没有包含电抗器温度保护,不能及时发出报警信号和切断电源;目前采用人工进行运行温度监测,人工操作受天气影响不能随时开展,存在持续性差,不能及时发现故障的缺点。The current relay protection project does not include reactor temperature protection, and cannot send an alarm signal and cut off the power supply in time. At present, manual operation temperature monitoring is used, and manual operation cannot be carried out at any time due to the influence of the weather. It has poor continuity and cannot detect faults in time.
目前人工对运行中的带电电抗器进行监测,为保证安全,只能在安全距离外使用非接触式红外测温仪或红外热像仪进行,由于电抗器结构是多层向心圆形结构(35kV电抗器多达12层),层间距离小于25mm,使用这种方法只能测量外侧绕组,而发热最严重的往往是处于中间位置,散热条件差绕组。At present, the live reactor in operation is manually monitored. In order to ensure safety, it can only be carried out by using a non-contact infrared thermometer or an infrared thermal imager from a safe distance. Since the reactor structure is a multi-layer centripetal circular structure ( The 35kV reactor has up to 12 layers), and the distance between layers is less than 25mm. This method can only measure the outer windings, and the most serious heating is often in the middle position, with poor heat dissipation conditions.
目前当电抗器发热严重,超高温运行需要及时退出运行时,只能依靠人工检测到异常情况,再人工操作将断路器跳闸,切断电抗器电源,存在故障发现不及时,有从故障发展为事故的风险。At present, when the reactor heats up seriously, and the ultra-high temperature operation needs to be stopped in time, the abnormal situation can only be detected manually, and then the circuit breaker is tripped manually to cut off the power supply of the reactor. The fault is not found in time, and the fault develops into an accident. risks of.
目前电抗器运行温度监测靠人工进行,由于一组电容器有3个电抗器,一个站里电抗器数量比较多,人工对其逐一监测,速度很慢,工作效率很低,增加了基层班组的工作量。同时人工监测还 存在受天气影响、持续性差的缺点。At present, the monitoring of reactor operating temperature is carried out manually. Since a group of capacitors has 3 reactors, the number of reactors in a station is relatively large. Manually monitor them one by one, the speed is very slow, the work efficiency is very low, and the work of the grassroots team is increased. quantity. At the same time, manual monitoring also has the disadvantages of being affected by the weather and having poor continuity.
发明内容Contents of the invention
本发明为克服上述现有技术所述的至少一种缺陷,提供一种电抗器运行温度无线实时监测装置,该装置能够克服现有技术中只能测量电抗器外绕组的温度的缺点,实现对电抗器内层的任意层进行温度的检测。In order to overcome at least one of the defects described in the above-mentioned prior art, the present invention provides a wireless real-time monitoring device for the operating temperature of the reactor. Any layer in the inner layer of the reactor is used for temperature detection.
为解决上述技术问题,本发明的技术方案如下:一种电抗器运行温度无线实时监测装置,所述的无线实时监测装置检测多层向心圆形结构的电抗器的实时温度,无线实时监测装置包括高压电场取电温度传感器、无线接收集中器、无线测温监控装置、上位机,所述的高压电场取电温度传感器安装在电抗器的任意层间间隙并通过无线通讯与无线接收集中器连接,所述的无线接收集中器与无线测温监控装置电连接,所述的无线测温监控装置与上位机无线连接或者电连接,所述的无线测温监控装置包括显示装置,所述的显示装置能够实时显示高压电场取电温度传感器反馈的电抗器的温度。高压电场取电温度传感器安装位置可以是电抗器任意层间间隙,这样使得测量位置能够有更多的选择,优选地,选择中间位置的层间间隙,也可以根据实际情况中发热最严重的位置进行安装监测,配合无线数据传输,使得检测的自由度大大提升,传感器获取的温度反馈在无线测温监控装置的显示装置,方便监控者的实时监控。In order to solve the above technical problems, the technical solution of the present invention is as follows: a wireless real-time monitoring device for the operating temperature of a reactor. The wireless real-time monitoring device detects the real-time temperature of a reactor with a multi-layer centripetal circular structure. It includes a high-voltage electric field power-taking temperature sensor, a wireless receiving concentrator, a wireless temperature measurement monitoring device, and a host computer. The high-voltage electric field power-taking temperature sensor is installed in any interlayer gap of the reactor and connected to the wireless receiving concentrator through wireless communication. , the wireless receiving concentrator is electrically connected with the wireless temperature measurement and monitoring device, the wireless temperature measurement and monitoring device is wirelessly or electrically connected with the host computer, the wireless temperature measurement and monitoring device includes a display device, and the display The device can display in real time the temperature of the reactor fed back by the high-voltage electric field temperature sensor. The installation position of the high-voltage electric field temperature sensor can be any interlayer gap of the reactor, which allows more choices for the measurement position. Preferably, the interlayer gap in the middle position can be selected, or it can be selected according to the actual situation. The position with the most serious heat Installation and monitoring, combined with wireless data transmission, greatly improves the degree of freedom of detection. The temperature feedback obtained by the sensor is displayed on the display device of the wireless temperature measurement and monitoring device, which is convenient for monitors to monitor in real time.
进一步地,所述的高压电场取电温度传感器通过电场取电为其提供电源。能够节约电能。Further, the high-voltage electric field power supply temperature sensor provides power for it through electric field power supply. Can save electric energy.
进一步地,所述的高压电场取电温度传感器有多个,分别安装在不同的电抗器上。使得能够同时监控多个电抗器的温度情况。Further, there are multiple high-voltage electric field power-taking temperature sensors, which are respectively installed on different reactors. This enables simultaneous monitoring of the temperature conditions of multiple reactors.
进一步地,所述的无线测温监控装置包括输入模块、芯片、输出模块,输入模块和输出模块分别连接芯片,所述的高压电场取电温度传感器连接输入模块,所述的输出模块连接报警装置和温度动作装置。无线测温监控装置可以设置报警值和动作值,并输出相应的触点信号,具有向下与无线接收集中器通信,向上与上位机通信的双通信模块。当电抗器温度达到预设的报警值时,输出模块输出报警信号,报警装置接收到报警信号后进行报警,当温度达到设定的动作值时,温度跳闸触点接通,保护装置动作跳开电抗器开关。Further, the wireless temperature measurement and monitoring device includes an input module, a chip, and an output module, the input module and the output module are respectively connected to the chip, the high-voltage electric field temperature sensor is connected to the input module, and the output module is connected to the alarm device and temperature action device. The wireless temperature measurement and monitoring device can set the alarm value and action value, and output the corresponding contact signal. It has a dual communication module that communicates downward with the wireless receiving concentrator and upward with the host computer. When the reactor temperature reaches the preset alarm value, the output module outputs an alarm signal, and the alarm device will alarm after receiving the alarm signal. When the temperature reaches the set action value, the temperature trip contact will be connected, and the protection device will trip. Reactor switch.
进一步地,所述的输出模块包括报警模块和温度动作模块,所述的报警模块和温度动作模块分别连接芯片,所述的报警模块连接报警装置,所述的温度动作模块连接温度动作装置,所述的断路器端子箱连接输出模块。操作人员可以预先设置电抗器断路温度的极限值,当达到该温度极限值时,报警模块发出告警命令后,信号经端子箱二次回路至保护装置,保护装置动作跳开电抗器开关,这样的双重保障能够使得电抗器的工作更加的安全可靠,避免发生较大的事故。Further, the output module includes an alarm module and a temperature action module, the alarm module and the temperature action module are respectively connected to the chip, the alarm module is connected to the alarm device, and the temperature action module is connected to the temperature action device. Connect the output modules to the breaker terminal box described above. The operator can pre-set the limit value of the reactor trip temperature. When the temperature limit is reached, the alarm module sends an alarm command, and the signal passes through the secondary circuit of the terminal box to the protection device, and the protection device operates to trip the reactor switch. Double protection can make the work of the reactor more safe and reliable, and avoid major accidents.
进一步地,所述的上位机与无线测温监控装置的输出模块无线通讯连接,所述的上位机能够通过上位机连接移动终端,移动终端能够显示电抗器实时温度。 这样可以使得操作人员实现远程监控和控制,使得操作更加的便捷高效。Further, the upper computer is wirelessly connected to the output module of the wireless temperature measurement and monitoring device, the upper computer can be connected to the mobile terminal through the upper computer, and the mobile terminal can display the real-time temperature of the reactor. In this way, the operator can realize remote monitoring and control, making the operation more convenient and efficient.
与现有技术相比,有益效果是:实现根据电抗器结构全面覆盖多层绕组运行温度监测;填补电抗器运行温度高自动报警、超高温自动跳闸保护的空白,为综合自动化系统提供了相应的触点信号;实现在线监测代替人工监测,提高了效率和保证故障发现的及时性;电场取电作为传感器的工作电源,无线传输信号,保证了安全的电气隔离,也免去了电池供电需要定期更换的麻烦。Compared with the existing technology, the beneficial effect is: to realize the comprehensive coverage of the multi-layer winding operating temperature monitoring according to the reactor structure; to fill the gaps in the reactor operating temperature automatic alarm and ultra-high temperature automatic trip protection, and provide a corresponding comprehensive automation system. Contact signal; realize on-line monitoring instead of manual monitoring, which improves efficiency and ensures the timeliness of fault discovery; the electric field takes power as the working power supply of the sensor, and wirelessly transmits signals, ensuring safe electrical isolation and eliminating the need for regular battery power supply. The hassle of replacement.
附图说明Description of drawings
图1是本发明整体结构示意图。Fig. 1 is a schematic diagram of the overall structure of the present invention.
具体实施方式detailed description
附图仅用于示例性说明,不能理解为对本专利的限制;为了更好说明本实施例,附图某些部件会有省略、放大或缩小,并不代表实际产品的尺寸;对于本领域技术人员来说,附图中某些公知结构及其说明可能省略是可以理解的。附图中描述位置关系仅用于示例性说明,不能理解为对本专利的限制。The accompanying drawings are for illustrative purposes only, and should not be construed as limitations on this patent; in order to better illustrate this embodiment, certain components in the accompanying drawings will be omitted, enlarged or reduced, and do not represent the size of the actual product; for those skilled in the art It is understandable that some well-known structures and descriptions thereof may be omitted in the drawings. The positional relationship described in the drawings is for illustrative purposes only, and should not be construed as a limitation on this patent.
如图1所示, 一种电抗器运行温度无线实时监测装置,所述的无线实时监测装置检测多层向心圆形结构的电抗器4的实时温度,其特征在于,无线实时监测装置包括高压电场取电温度传感器1、无线接收集中器2、无线测温监控装置3、上位机6,所述的高压电场取电温度传感器1安装在电抗器4的任意层间间隙并通过无线通讯与无线接收集中器2连接,所述的无线接收集中器2与无线测温监控装置3电连接,所述的无线测温监控装置3与上位机6无线连接或者电连接,所述的无线测温监控装置3包括显示装置,所述的显示装置能够实时显示高压电场取电温度传感器反馈的电抗器的温度。所述的高压电场取电温度传感器1通过电场取电为其提供电源。所述的高压电场取电温度传感器1有多个,分别安装在不同的电抗器4上。所述的无线测温监控装置包括输入模块、芯片、输出模块,输入模块和输出模块分别连接芯片,所述的高压电场取电温度传感器连接输入模块,所述的输出模块连接报警装置和温度动作装置。所述的输出模块包括报警模块和温度动作模块,所述的报警模块和温度动作模块分别连接芯片,所述的报警模块连接报警装置,所述的温度动作模块连接温度动作装置,所述的断路器端子箱5连接输出模块。所述的上位机6与无线测温监控装置3的输出模块无线通讯连接,所述的上位机6能够通过上位机6连接移动终端,移动终端能够显示电抗器实时温度,并能够通过移动终端对无线测温监控装置实现远程控制。所述的端子箱后面有保护装置,其控制跳闸。As shown in Figure 1, a kind of reactor operation temperature wireless real-time monitoring device, described wireless real-time monitoring device detects the real-time temperature of the reactor 4 of multilayer centripetal circular structure, it is characterized in that, wireless real-time monitoring device comprises high voltage Electric field power-taking temperature sensor 1, wireless receiving concentrator 2, wireless temperature measurement and monitoring device 3, and host computer 6, the high-voltage electric field power-taking temperature sensor 1 is installed in any interlayer gap of the reactor 4 and communicates with the wireless The receiving concentrator 2 is connected, the wireless receiving concentrator 2 is electrically connected with the wireless temperature measurement monitoring device 3, the wireless temperature measurement monitoring device 3 is wirelessly or electrically connected with the host computer 6, and the wireless temperature measurement monitoring device 3 is connected wirelessly or electrically. The device 3 includes a display device capable of displaying in real time the temperature of the reactor fed back by the high-voltage electric field temperature sensor. The high-voltage electric field power-taking temperature sensor 1 provides power for it through electric field power-taking. There are multiple high-voltage electric field power-taking temperature sensors 1 installed on different reactors 4 respectively. The wireless temperature measurement and monitoring device includes an input module, a chip, and an output module, the input module and the output module are connected to the chip respectively, the high-voltage electric field temperature sensor is connected to the input module, and the output module is connected to the alarm device and temperature action device. The output module includes an alarm module and a temperature action module, the alarm module and the temperature action module are respectively connected to the chip, the alarm module is connected to the alarm device, the temperature action module is connected to the temperature action device, and the circuit breaker The terminal box 5 is connected to the output module. The upper computer 6 is wirelessly connected to the output module of the wireless temperature measurement and monitoring device 3, the upper computer 6 can be connected to the mobile terminal through the upper computer 6, the mobile terminal can display the real-time temperature of the reactor, and can control the temperature of the reactor through the mobile terminal. The wireless temperature measurement and monitoring device realizes remote control. There is a protection device behind the terminal box, which controls tripping.
显然,本发明的上述实施例仅仅是为清楚地说明本发明所作的举例,而并非是对本发明的实施方式的限定。对于所属领域的普通技术人员来说,在上述说明的基础上还可以做出其它不同形式的变化或变动。这里无需也无法对所有的实施方式予以穷举。凡在本发明的精神和原则之内所作的任何修改、等同替换和改进等,均应包含在本发明权利要求的保护范围之内。Apparently, the above-mentioned embodiments of the present invention are only examples for clearly illustrating the present invention, rather than limiting the implementation of the present invention. For those of ordinary skill in the art, other changes or changes in different forms can be made on the basis of the above description. It is not necessary and impossible to exhaustively list all the implementation manners here. All modifications, equivalent replacements and improvements made within the spirit and principles of the present invention shall be included within the protection scope of the claims of the present invention.
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